Coagulation behavior of polyaluminum-titanium chloride composite coagulant with humic acid: A mechanism analysis

Water Res. 2022 Jul 15:220:118633. doi: 10.1016/j.watres.2022.118633. Epub 2022 May 19.

Abstract

The hydrolysate species of metal-based coagulants and the binding sites of humic acid (HA) are highly dependent on the pH conditions. Exploring the binding sites and modes between coagulant hydrolysates and HA molecules is critical to understanding the coagulation mechanism. In this paper, the binding behavior between HA molecules and the hydrolysates of a polyaluminum-titanium chloride composite coagulant (PATC) was investigated under different pH conditions by semi-quantitative FTIR and XPS. It was found that oligomeric and mesopolymeric hydrolysates were the dominant species under acid conditions, which could complex with the hydroxyl and carboxyl groups of HA by forming COAl/Ti coordinate bonds. However, large amounts of H+ could compete with Al3+ and weaken the removal efficiency of HA. With the increase of pH, the hydrolysis process of the PATC and the deprotonation of HA were simultaneously underway. Under weakly acid conditions, the complexation of the aluminum hydrolysates with carboxyl groups was improved due to the gradually diminishing competition of H+ and the enhanced charge neutralization of the further polymerized hydrolysates. Consequently, the maximum UV254 removal by adding PATC was observed at pH 6. Under alkaline conditions, the sweeping effect of amorphous hydroxide dominated the HA removals, which was accompanied by the surface complexation of Al/Ti nuclear with carboxyl groups as well as the hydrogen bonds between hydroxyl and hydroxide. This study provides a new clue for the interaction mechanisms between the hydrolysates of composite coagulants and the dominant functional groups of HA at various pH conditions.

Keywords: Binding behavior; Coagulation mechanism; Composite coagulants; Semi-quantitative FTIR; pH effect.

MeSH terms

  • Aluminum / chemistry
  • Aluminum Hydroxide / chemistry
  • Chlorides
  • Flocculation
  • Humic Substances* / analysis
  • Hydroxyl Radical
  • Titanium / chemistry
  • Water Purification*

Substances

  • Chlorides
  • Humic Substances
  • Hydroxyl Radical
  • Aluminum Hydroxide
  • Aluminum
  • Titanium